基于损伤的简化混凝土模型在地震应用中的性能

Jesus Lopez, Bernardo Ramirez, Clayton Pettit, C. Cruz-Noguez
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引用次数: 0

摘要

在过去的几十年中,地震激励下钢筋混凝土(RC)结构的构件级有限元(FE)建模取得了重大进展;然而,通过实验数据验证的全尺寸三维系统级 RC 结构的可靠、精确分析模型却非常缺乏。由于开发一个完整的非线性模型既昂贵又耗时,因此在实践中采用了较为简单的模型,通常是弹性模型或块塑性模型,并规定了额外的条款以考虑非线性行为。根据分析人员所做的假设,完整结构的响应可能存在大量不确定性。捕捉整体失效模式具有挑战性,对强度和延性能力的评估可能不准确,从而导致潜在的不安全设计。本研究的目标是评估基于损伤的简化混凝土双轴模型在分析和捕捉全尺度 RC 系统结构行为方面的性能。基于损伤的混凝土模型只需分析师的少量输入,便于在设计环境中使用,同时其明确的非条件收敛公式允许非迭代求解。因此,基于损伤的模型具有高效计算分析的特点,同时还能考虑复杂的现象,如考虑反向加载(裂缝闭合)中的刚度恢复能力和混凝土中的永久应变。研究比较了元件级和系统级的分析数据和实验数据,并为全尺寸结构分析提出了一个可行的基于损伤的模型。研究结果表明,基于损伤的模型是为构件和整体结构开发高效分析模型的可行替代方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Performance of Simplified Damage-Based Concrete Models in Seismic Applications
Significant progress in the finite-element (FE) modeling at the member-level of reinforced-concrete (RC) structures under seismic excitation has been achieved in the past decades; however, reliable and accurate analysis models for full-scale 3D system-level RC structures validated with experimental data are scarce. As the development of a complete nonlinear model is expensive and time consuming, simpler models, typically elastic or lumped-plastic in nature, are employed in practice with additional provisions prescribed to account for nonlinear behavior. Depending on the assumptions made by the analyst, there may be substantial uncertainties related to the response of a complete structure. Capturing global failure modes is challenging, and the assessment of strength and ductility capacities may be inaccurate, resulting in potentially unsafe designs. The objective of this research is to assess the performance of simplified damage-based concrete biaxial models in analyzing and capturing the structural behavior of full-scale RC systems. Damage-based models for concrete require minor input from the analyst, facilitating their use in a design setting, while their explicit, non-conditional convergence formulations allow for non-iterative solutions. This results in damage-based models featuring efficient computational analysis while accounting for complex phenomena such as the capacity to account for stiffness recovery in reversal loading (crack closing) and permanent strains in the concrete. A comparison between analytical and experimental data at both the element- and system-levels is conducted, and a viable damage-based model is proposed for a full-scale structure analysis. The results of the study show that damage-based models are a viable alternative to developing efficient analysis models for elements and whole structures.
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